• Photonics Research
  • Vol. 5, Issue 6, 662 (2017)
Shunxiang Liu1, Zhongjun Li2、3, Yanqi Ge3, Huide Wang3, Rui Yue1, Xiantao Jiang3, Jianqing Li2, Qiao Wen1、4, and Han Zhang3、5
Author Affiliations
  • 1Key Laboratory of Optoelectronic Devices and Systems of Ministry of Education and Guangdong Province, College of Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, China
  • 2Faculty of Information Technology, Macau University of Science and Technology, Macao, China
  • 3Shenzhen Engineering Laboratory of Phosphorene and Optoelectronics, Collaborative Innovation Center for Optoelectronic Science and Technology, and Key Laboratory of Optoelectronic Devices and Systems of Ministry of Education and Guangdong Province, Shenzhen University, Shenzhen 518060, China
  • 4e-mail: wenqiao@szu.edu.cn
  • 5e-mail: hzhang@szu.edu.cn
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    DOI: 10.1364/PRJ.5.000662 Cite this Article Set citation alerts
    Shunxiang Liu, Zhongjun Li, Yanqi Ge, Huide Wang, Rui Yue, Xiantao Jiang, Jianqing Li, Qiao Wen, Han Zhang. Graphene/phosphorene nano-heterojunction: facile synthesis, nonlinear optics, and ultrafast photonics applications with enhanced performance[J]. Photonics Research, 2017, 5(6): 662 Copy Citation Text show less
    Characterization of GR-BP SA. (a) SEM image. (b)–(d) EDS images of BP-GR on Si substrate. (e) HRTEM. (f) The SAED pattern from the rectangular region in (e). (g) AFM pattern. (h) The corresponding heights of the GR-BP sheets. (i) TEM image of the GR-BP sheets. (j) SAED pattern from the rectangular region in (i). (k) Absorption spectrum. (l) Raman spectra of GR/BP exposed in the air for 0 day. (m) Raman spectrum of BP in GR/BP in the air for 0 and 1 day. (n) Raman spectrum of pure BP exposed in the air for 0 and 1 day.
    Fig. 1. Characterization of GR-BP SA. (a) SEM image. (b)–(d) EDS images of BP-GR on Si substrate. (e) HRTEM. (f) The SAED pattern from the rectangular region in (e). (g) AFM pattern. (h) The corresponding heights of the GR-BP sheets. (i) TEM image of the GR-BP sheets. (j) SAED pattern from the rectangular region in (i). (k) Absorption spectrum. (l) Raman spectra of GR/BP exposed in the air for 0 day. (m) Raman spectrum of BP in GR/BP in the air for 0 and 1 day. (n) Raman spectrum of pure BP exposed in the air for 0 and 1 day.
    Nonlinear optical response of the as-prepared GR-BP SAs. (a) Nonlinear transmission curve of GR-BP solution concentration A. (b) Nonlinear transmission curve of GR-BP solution concentration B.
    Fig. 2. Nonlinear optical response of the as-prepared GR-BP SAs. (a) Nonlinear transmission curve of GR-BP solution concentration A. (b) Nonlinear transmission curve of GR-BP solution concentration B.
    Configuration of the pulsed laser or ultrashort pulsed laser based on GR-BP.
    Fig. 3. Configuration of the pulsed laser or ultrashort pulsed laser based on GR-BP.
    Characteristics of the Q-switched pulses. (a) Q-switching output spectrum. (b) Single pulse profile. (c) Output pulse train. (d) RF spectrum. (e) Output power and pulse energy as a function of the pump power, respectively. (f) Output repetition rate and pulse duration as a function of the pump power, respectively.
    Fig. 4. Characteristics of the Q-switched pulses. (a) Q-switching output spectrum. (b) Single pulse profile. (c) Output pulse train. (d) RF spectrum. (e) Output power and pulse energy as a function of the pump power, respectively. (f) Output repetition rate and pulse duration as a function of the pump power, respectively.
    Typical mode-locking characteristics. (a) Pulse train. (b) Optical spectrum. (c) Autocorrelation trace. (d) RF spectrum.
    Fig. 5. Typical mode-locking characteristics. (a) Pulse train. (b) Optical spectrum. (c) Autocorrelation trace. (d) RF spectrum.
    Typical mode-locking characteristics. (a) Pulse train. (b) Optical spectrum. (c) Autocorrelation trace. (d) RF spectrum.
    Fig. 6. Typical mode-locking characteristics. (a) Pulse train. (b) Optical spectrum. (c) Autocorrelation trace. (d) RF spectrum.
    Typical HML characteristics. (a) 21st of harmonics pulse train. (b) 28th of harmonics pulse train. (c) 40th of harmonics pulse train (d) Optical spectrum. (e) Autocorrelation trace. (f) RF spectrum.
    Fig. 7. Typical HML characteristics. (a) 21st of harmonics pulse train. (b) 28th of harmonics pulse train. (c) 40th of harmonics pulse train (d) Optical spectrum. (e) Autocorrelation trace. (f) RF spectrum.
    Shunxiang Liu, Zhongjun Li, Yanqi Ge, Huide Wang, Rui Yue, Xiantao Jiang, Jianqing Li, Qiao Wen, Han Zhang. Graphene/phosphorene nano-heterojunction: facile synthesis, nonlinear optics, and ultrafast photonics applications with enhanced performance[J]. Photonics Research, 2017, 5(6): 662
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